A battery cell according to an exemplary aspect of the present disclosure includes, among other things, a can assembly, an electrode assembly housed inside the can assembly and a venting system including a vent port and at least one of a vent tube inside the can assembly or a spacer plate mounted between the vent port and the electrode assembly.
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1. A battery cell, comprising:
a can assembly;
an electrode assembly housed inside said can assembly; and
a venting system including a vent port, at least one of a vent tube extending completely inside said can assembly, and a spacer plate mounted between said vent port and said electrode assembly, wherein said spacer plate is spaced from and unconnected to said at least one vent tube,
wherein said spacer plate is mounted to an underside of a top plate of said can assembly.
15. A battery cell, comprising:
a can assembly;
a lithium-ion electrode assembly housed inside said can assembly; and
a venting system including:
a vent port;
a plurality of vent tubes mounted inside said can assembly and each establishing a vertical flow pathway configured to communicate gaseous byproducts toward said vent port; and
a spacer plate mounted between said vent port and said electrode assembly and establishing a lateral flow pathway for the gaseous byproducts.
14. A battery cell, comprising:
a can assembly;
an electrode assembly housed inside said can assembly; and
a venting system including a vent port, at least one of a vent tube extending completely inside said can assembly, and a spacer plate mounted between said vent port and said electrode assembly, wherein said spacer plate is spaced from and unconnected to said at least one vent tube,
wherein said spacer plate includes a width that is less than a width of the electrode assembly.
13. A battery cell, comprising:
a can assembly;
an electrode assembly housed inside said can assembly; and
a venting system including a vent port, at least one of a vent tube extending completely inside said can assembly, and a spacer plate mounted between said vent port and said electrode assembly, wherein said spacer plate is spaced from and unconnected to said at least one vent tube,
wherein said at least one vent tube includes a plurality of vent tubes mounted inside said can assembly and each establishing a flow pathway configured to communicate gaseous byproducts toward said vent port.
2. The battery cell as recited in
3. The battery cell as recited in
4. The battery cell as recited in
5. The battery cell as recited in
7. The battery cell as recited in
8. The battery cell as recited in
9. The battery cell as recited in
10. The battery cell as recited in
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This disclosure relates to the venting of battery cells of an electrified vehicle battery pack.
The need to reduce automotive fuel consumption and emissions is well known. Therefore, vehicles are being developed that reduce or completely eliminate reliance on internal combustion engines. Electrified vehicles are one type of vehicle currently being developed for this purpose. In general, electrified vehicles differ from conventional motor vehicles because they are selectively driven by one or more battery powered electric machines. Conventional motor vehicles, by contrast, rely exclusively on the internal combustion engine to drive the vehicle.
A high voltage battery pack typically powers the electric machines and other electrical loads of the electrified vehicle. The battery pack includes a plurality of battery cells that store electric energy. From time to time, gaseous byproducts may be released by the battery cells, such as caused by encounters with off-normal conditions or environments. The battery cells may therefore include vents that allow the gaseous byproducts to escape from the interiors of the battery cells.
A battery cell according to an exemplary aspect of the present disclosure includes, among other things, a can assembly, an electrode assembly housed inside the can assembly and a venting system including a vent port and at least one of a vent tube inside the can assembly or a spacer plate mounted between the vent port and the electrode assembly.
In a further non-limiting embodiment of the foregoing battery cell, the can assembly includes a casing and a top plate.
In a further non-limiting embodiment of either of the foregoing battery cells, the vent tube is attached to an interior wall of the casing.
In a further non-limiting embodiment of any of the foregoing battery cells, the vent tube is secured within a corner of the casing.
In a further non-limiting embodiment of any of the foregoing battery cells, the vent tube includes a first height that is less than a second height of a wall of the casing.
In a further non-limiting embodiment of any of the foregoing battery cells, the vent port is disposed in the top plate.
In a further non-limiting embodiment of any of the foregoing battery cells, the vent tube establishes a flow pathway between different portions of the can assembly.
In a further non-limiting embodiment of any of the foregoing battery cells, a plurality of vent tubes are mounted inside the can assembly and each establishing a flow pathway configured to communicate gaseous byproducts toward the vent port.
In a further non-limiting embodiment of any of the foregoing battery cells, the spacer plate is mounted to an underside of a top plate of the can assembly.
In a further non-limiting embodiment of any of the foregoing battery cells, the spacer plate is an arched sheet of material.
In a further non-limiting embodiment of any of the foregoing battery cells, at least one of the vent tube and the spacer plate includes a plurality of perforations.
In a further non-limiting embodiment of any of the foregoing battery cells, the venting system includes both of the vent tube and the spacer plate.
A battery pack according to another exemplary aspect of the present disclosure includes, among other things, a battery assembly that includes a plurality of battery cells. Each battery cell of the plurality of battery cells includes a venting system comprising a vent tube configured to establish a first flow pathway for communicating gaseous byproducts inside the battery cell and a spacer plate configured to establish a second flow pathway for communicating the gaseous byproducts.
In a further non-limiting embodiment of the foregoing battery pack, the venting system includes a vent port.
In a further non-limiting embodiment of either of the foregoing battery packs, the spacer plate is disposed between the vent port and an electrode assembly of the battery cell.
In a further non-limiting embodiment of any of the foregoing battery packs, each of the plurality of battery cells includes a can assembly including a casing and a top plate.
In a further non-limiting embodiment of any of the foregoing battery packs, the vent tube is disposed in a corner of the casing.
In a further non-limiting embodiment of any of the foregoing battery packs, the first flow pathway is a vertical flow pathway and the second flow pathway is a lateral flow pathway.
In a further non-limiting embodiment of any of the foregoing battery packs, at least one of the vent tube and the spacer plate includes a plurality of perforations.
In a further non-limiting embodiment of any of the foregoing battery packs, the vent tube is a hollow cylinder and the spacer plate is an arched sheet of material.
The embodiments, examples and alternatives of the preceding paragraphs, the claims, or the following description and drawings, including any of their various aspects or respective individual features, may be taken independently or in any combination. Features described in connection with one embodiment are applicable to all embodiments, unless such features are incompatible.
The various features and advantages of this disclosure will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.
This disclosure describes a venting system for venting gaseous byproducts that may accumulate inside battery cells of an electrified vehicle battery pack. An exemplary battery cell includes a can assembly, an electrode assembly housed inside the can assembly, and a venting system for venting the gaseous byproducts. The venting system may include a vent port and either a vent tube inside the can assembly or a spacer plate mounted between the vent port and the electrode assembly. In some embodiments, the venting system includes both the vent tube and the spacer plate. The proposed venting systems of this disclosure provide multiple flow pathways within the battery cell for facilitating venting of the gaseous byproducts. These and other features are discussed in greater detail in the following paragraphs of this detailed description.
In one non-limiting embodiment, the electrified vehicle 12 is a full electric vehicle propelled solely through electric power supplied by an electric machine 14 without assistance from an internal combustion engine. The electric machine 14 may operate as an electric motor, an electric generator, or both. The electric machine 14 receives electrical power and provides a rotational output power. The electric machine 14 may be connected to a gearbox 16 for adjusting the output torque and speed of the electric machine 14 by a predetermined gear ratio. The gearbox 16 is connected to a set of drive wheels 18 by an output shaft 20. A high voltage bus 22 electrically connects the electric machine 14 to a battery pack 24 through an inverter 26. The electric machine 14, the gearbox 16, and the inverter 26 may collectively be referred to as a transmission 28.
The battery pack 24 is an exemplary electrified vehicle battery. The battery pack 24 may be a high voltage traction battery pack that includes a plurality of battery assemblies 25 (i.e., battery arrays or groupings of battery cells) capable of outputting electrical power to operate the electric machine 14 and/or other electrical loads of the electrified vehicle 12. Other types of energy storage devices and/or output devices can also be used to power the electrified vehicle 12.
The electrified vehicle 12 may also include a charging system 30 for charging the energy storage devices (e.g., battery cells) of the battery pack 24. The charging system 30 may be connected to an external power source (not shown) for receiving and distributing power. The charging system 30 may also be equipped with power electronics for converting AC power received from the external power supply to DC power for charging the energy storage devices of the battery pack 24. The charging system 30 may also accommodate one or more conventional voltage sources from the external power supply (e.g., 110 volt, 220 volt, etc.).
The powertrain 10 of
In one non-limiting embodiment, the battery cell 56 is a prismatic, lithium-ion cell. However, battery cells having other geometries (cylindrical, pouch, etc.), other chemistries (nickel-metal hydride, etc.), or both, could also benefit from the teachings of the disclosure.
The exemplary battery cell 56 includes a can assembly 58 and an electrode assembly 60 housed inside the can assembly 58. In one non-limiting embodiment, the can assembly 58 includes a casing 62 and a top plate 64. The casing 62 includes a plurality of walls 66 that define an interior 68 for housing the electrode assembly 60. The top plate 64 of the can assembly 58 may be mounted to the casing 62. In one non-limiting embodiment, the top plate 64 is welded to the casing 62. The top plate 64 includes terminals 70 (e.g., one positive terminal and one negative terminal). Current collector bars 72 (see
The electrode assembly 60, sometimes referred to as a jelly roll, is formed by winding a positive electrode (e.g., a cathode) with an active coating, a negative electrode (e.g., an anode) with an active coating, and a separator inserted between the positive electrode and the negative electrode. The electrode assembly 60 may be wound about either a vertical or horizontal axis. Electrical current flows to and from the active materials of the positive and negative electrodes. The circuit is completed by ionic flow between the electrodes, as supported by the electrolyte.
The battery cell 56 may additionally include a venting system 74 for discharging gaseous byproducts from the interior 68. The gaseous byproducts may be released during a thermal runaway event in which a battery cell 56 heats up faster than the heat can be dissipated, for example. In one non-limiting embodiment, the venting system 74 includes a vent port 76 for discharging the gaseous byproducts. The vent port 76 may be covered with a membrane 78. During certain conditions, gaseous byproducts released from the electrode assembly 60 may be expelled from the interior 68 by communicating these byproducts through the vent port 76.
The exemplary venting system 74 may include various additional features for expelling the gaseous byproducts. The various venting system features discussed below establish multiple flow pathways for expelling the gaseous byproducts from the battery cell 56 and prevent the vent port 76 from becoming blocked. Incorporation of any or all of the exemplary venting features of this disclosure can mitigate pressure build-up inside the battery cell 56 during the rare occurrence of a thermal runaway event.
In another non-limiting embodiment, a height H1 of the vent tubes 80 is smaller than a height H2 of each wall 66 of the casing 62 (best shown in
The vent tubes 80 may optionally be secured at one or more corners 82 of the casing 62. In one non-limiting embodiment, vent tubes 80 are located within the corners 82 on the same side of the casing 62 (see
The vent tubes 80 may embody any size or shape. In one non-limiting embodiment, the vent tubes 80 are configured as hollow cylinders for establishing the flow pathways 85. In another non-limiting embodiment, the vent tubes 80 include a plurality of perforations 86 (see
In another embodiment, shown in
The spacer plate 88 is a rigid sub-structure mounted inside the battery cell 56 to ensure the reliable, unobstructed flow of gaseous byproducts toward the vent port 76. In one non-limiting embodiment, the spacer plate 88 is configured as an arched sheet of material. Other shapes are also contemplated within the scope of this disclosure.
In yet another non-limiting embodiment, the spacer plate 88 includes a plurality of perforations 94 (see
In yet another non-limiting embodiment, shown in
Although the different non-limiting embodiments are illustrated as having specific components or steps, the embodiments of this disclosure are not limited to those particular combinations. It is possible to use some of the components or features from any of the non-limiting embodiments in combination with features or components from any of the other non-limiting embodiments.
It should be understood that like reference numerals identify corresponding or similar elements throughout the several drawings. It should be understood that although a particular component arrangement is disclosed and illustrated in these exemplary embodiments, other arrangements could also benefit from the teachings of this disclosure.
The foregoing description shall be interpreted as illustrative and not in any limiting sense. A worker of ordinary skill in the art would understand that certain modifications could come within the scope of this disclosure. For these reasons, the following claims should be studied to determine the true scope and content of this disclosure.
Boddakayala, Bhaskara, Freiman, Joseph F., Chikkannanavar, Satish B.
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Sep 17 2015 | CHIKKANNANAVAR, SATISH B | Ford Global Technologies, LLC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 036611 | /0931 | |
Sep 18 2015 | BODDAKAYALA, BHASKARA | Ford Global Technologies, LLC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 036611 | /0931 | |
Sep 21 2015 | Ford Global Technologies, LLC | (assignment on the face of the patent) | / | |||
Sep 21 2015 | FREIMAN, JOSEPH F | Ford Global Technologies, LLC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 036611 | /0931 |
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